基于流体动力学的微流体通道中单细胞捕获

A. A. Khalili, M. Basri, M. Ahmad
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引用次数: 1

摘要

微流控装置对于单细胞分析,如细胞力学和电学特性等具有重要意义。单细胞表征可能涉及许多重要的应用,包括早期疾病诊断。然而,要进行单细胞操作,首先必须分离单个细胞,并提供细胞操作平台。捕获单个细胞的方法之一是在微流体通道中使用流体动力学捕获。本研究为酵母细胞模型的单细胞捕获提供了一个有限元模型。模拟的目标是获得合适的通道几何形状和流体入口和吸入流量的优化比例,以捕获单个酵母细胞。诱捕通道设计为诱捕5 μm的酵母细胞,在诱捕通道末端设置吸孔。根据流体力学的概念,研究了细胞捕获模型的设计几何形状和流体流速比。采用有限元软件ABAQUS-FEA的数值解进行分析。利用细胞捕获模型,通过优化通道的吸孔几何形状和适当的流体入口和吸流量比,可以将单个酵母细胞捕获到陷阱通道中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Single cell trapping in microfluidic channel via hydrodynamic manipulation
Microfluidic devices are important for the single cell analysis such as cell mechanical and electrical characterization. Single cell characterization could be related to many significant applications including early disease diagnosis. However to perform the single cell manipulation, firstly a single cell have to be isolated and a platform for the cell manipulation have to be provided. One of the methods to trap a single cell is by using hydrodynamic trapping in the microfluidic channel. This study provides a finite element model for single cell trapping for a yeast cell model. The objectives of the simulations are to obtain the appropriate channels' geometry and optimized ratio of the fluid's inlet and suction flow rate to trap a single yeast cell. Trap channel was designed to trap a 5 μm yeast cell with a suction hole placed in the end of the trap channel. Design geometry and ratio of fluid flow rates referring to the hydrodynamic concept were studied for the cell trapping model. The analysis was carried out using numerical solutions from the finite element ABAQUS-FEA software. Using the cell trapping model, a single yeast cell able to be trapped into the trap channel with optimized channel's suction hole's geometry and appropriate fluid's inlet and suction flow rate ratio.
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